Showing posts with label Craig Kohn. Show all posts
Showing posts with label Craig Kohn. Show all posts

Friday, September 30, 2016

Guest Blogger: Problem Solving Approaches in Agriscience Education

Editor's Note: This blog is part of a series of guest contributors from the National school-based agricultural education family. Mr. Craig Kohn is a current doctoral student in curriculum, instruction and teacher education at Michigan State University. He is a former instructor at Waterford Union High School outside of Milwaukee, WI. He is heavily involved with state and national agricultural education initiatives, including the new AFNR standards, the National SAE Renewal Taskforce, and is on a focus advisory group for the National FFA. Prior to becoming an agriscience instructor, Mr. Kohn conducted research in fields of medicine, ecology, and education at the University of Wisconsin - Madison, where he earned degrees and licenses in agriscience, education, agricultural education, and biology education. Mr. Kohn also has a license to teach environmental science. Mr. Kohn was raised on a dairy farm in northeastern Wisconsin near Green Bay, where he raised dairy, beef, swine, horses, goats, and chickens and was actively involved in environmental and ecological experiences on his home farm.

When I was in the 7th grade, we were asked to deliver an introductory speech about ourselves for an English class assignment. My best friend Paul introduced himself as someone who was very fluent in English, which he claimed proved that he was very smart because he had been told that English is a very difficult language to learn. While Paul was really just trying to be funny, his remark was actually pretty insightful. English is a notoriously-difficult language. Most native English speakers don’t even question the fact that the words “thought”, “through”, “though”, and “tough” each look similar but sound completely different, nor question the absurd reality that the words “bologna” and “pony” somehow rhyme.

Even though other Western languages like French or Spanish tend to be easier to learn than English, most native English speakers find it far more difficult to learn a second language. I personally took French in high school for two years. While most of my English was learned without a teacher licensed in the subject, most of my French was learned with a trained and highly-experienced professional for about an hour a day over the better part of two years. Today I can barely get beyond “Bonjour!” and would certainly not be prepared to visit a French-speaking region. However, were I to spend even just a week in Paris, I would probably be more fluent in speaking French than I was after two years in a French language classroom in the US.

The differences between the ease of learning our native language and the difficulty of learning a second language can be attributed to many factors, but one of the most important to consider is the difference between acquisition and learning.

Acquisition, Learning, and Literacy
James Paul Gee, in his 1991 work, “Rewriting Literacy”, made a clear distinction between acquisition and learning. Gee defined acquisition as the process of gaining skill or knowledge subconsciously through exposure as well as trial and error. According to Gee, this is very different from learning, which is an intentional process of gaining conscious knowledge or skill from a teacher. We unconsciously acquire our first language in a manner that seems almost effortless, but we almost always have to struggle to learn a second language (unless you were fortunate enough to grow up in a multilingual household).

Gee makes the case that much of our knowledge and skill comes through a combination of unstructured acquisition and intentional conscious learning. Driver’s education is a classic example of this. In most driver’s education programs, you begin in a classroom where you learn the fundamentals such as where to place your hands on the steering wheel, how to read road signs, and how to parallel park. We all know quite well that this intentional conscious learning is far from enough to fully prepare a student for the realities of driving a car, which is why the vast majority of students will also take part in numerous hours of behind the wheel with an instructor and a parent before getting their official license at age 16. If teenagers could just take a multiple choice test to get their license without the actual driving experience, our roads would be much more terrifying.

Agriscience education is no different than language, driver’s education, or any set of knowledge and skill that is to be gained by a student. If anything, agriscience courses are even more dependent on the combination of these two forms of education because much of agriculture depends on both knowledge and skill. Whether it be performing sutures to close a wound, using a microscope to identify a pathogen, collecting soil samples for testing, or delivering a marketing presentation, students in agricultural courses can only be fully prepared for careers and their personal futures if they can gain knowledge through both acquisition and learning. In fact, if you consider the three-circle model of agricultural education (classroom and laboratory learning, personal preparation, and career experiences), two of these three circles are more about gaining education through acquisition than from learning.

James Paul Gee would probably be very happy about this, as he argues that we tend to be more proficient in regards to knowledge and skill sets when they are gained through acquisition instead of learning. However, learning in a classroom setting results in more conscious awareness of the knowledge and skill that have been gained, making what occurs in the classroom and laboratory setting just as important as what occurs in immersive career experiences and personal growth opportunities. Nonetheless, a student’s classroom experiences can be enhanced by combining a mixture of learning and acquisition through strategies such as the problem-solving approach to teaching.

The Problem Solving Approach
The Problem Solving Approach is a method of instruction with origins going back to the work of John Dewey. If you are unfamiliar with John Dewey, you should get pretty familiar with him if you intend to work in the field of education because his work and philosophy serves for much of the basis of modern education. The problem solving approach tends to consist of four major themes:
  1. Engagement: the lesson or curriculum reflects a real-world consideration that is recognizable in the lives of students. 
  2. Inquiry: students must use curiosity, exploration, observation, and hypothesis formation to create answers for questions that may or may not have a right answer (or may have multiple right answers). 
  3. Solution building: the teacher in these lessons acts as a coach, enabling students to work in teams to make accurate observations, identify patterns, and develop rational models to explain an unknown phenomenon (this, by the way, is the basis for much of the practices that serve as a major component of the Next Generation Science Standards). 
  4. Reflection: once students have addressed an unknown situation in a manner that results in a plausible explanation based on evidence, logic, and critical thinking, the teacher again acts as a coach to elicit their reasoning, challenge their assumptions, and refine their analysis in a manner that both allows students to recognize gaps in their logic and breaks in their comprehension of core concepts in the material.
It should be noted that all of these components reflect a student-centered model of education. Traditionally, we think of the teacher as a repository of facts and information, a person who identifies when a student is wrong and re-directs them to the “correct knowledge”. Look at any multiple choice exam or teacher’s edition of a textbook and you could easily be forgiven for thinking that this is how education is supposed to work. I assure you, there are certainly more effective ways to be an instructor.

While there are many reasons to teach in a student-centered manner, among the most notable is that almost all students only have teachers in their daily lives for about 12-17 years. Individuals who were taught in a teacher-centered model are pretty much screwed for the rest of their lives because they consistently relied on an ‘expert’ to tell them what was right or wrong. This would be just fine if you could learn all of the facts in the world by the time you were 18 (and assume that no other facts would be discovered), but the fact of the matter is that you continue to be exposed to new information and ideas throughout your entire life! Good teachers therefore make themselves increasingly unnecessary by teaching their students how to make observations, propose questions, develop hypotheses, analyze evidence and arguments, and determine the validity of a conclusion. Good teachers enable their students to constantly ask themselves how they know they are not wrong even after they graduate. By utilizing a student-centered model of education, you can enable a student to make sense of the world even as new information and discoveries occur in their lives.

Furthermore, the problem solving approach enables a deeper comprehension of knowledge and a greater development of skill because it tends to entail a combination of acquisition and learning. Not only do students develop a conscious awareness of the knowledge and skills they have gained through their education but they have a better command of that knowledge and skill because it was developed in a manner reflective of real-world situations. If students can further immerse themselves in a career-based experience through FFA, an SAE, and other similar opportunities, they will enter the workforce with career-ready levels of knowledge and skill.

Student-Centered, Problem Solving Approaches in the Classroom
Without knowing any particular terms for these ideas, I began my career as a high school agriscience teacher with similar intentions. I had realized that there were stark differences between the education I had gained through acquisition on the Wisconsin dairy farm on which I had been raised and in the classrooms in which my old-school teacher-centered education had occurred. When I was experiencing a real-world environment through my acquisition-based education on the farm, I was unconsciously gaining expertise in a set of career and life skills that would remain with me for the rest of my life. However, I was not experiencing the same level of benefits in my high school classrooms. When I became a teacher myself, I yearned for my students to have the experiences that I had once had on our farm. In my opinion, the perfect classroom was an environment where the lessons could be not just learned but experienced as well.

As a new teacher, I worked tirelessly to create the types of environments where students could gain knowledge and skill through both learning and acquisition. I built pens, cages, and coops and filled them with cattle, chickens, ducks, rabbits, and a persnickety classroom cat named Tiffany. I regularly utilized our school forest and greenhouse, developed landscaping gardens, and created a working department office that was run by students. Using corporate donations, salvaged lab equipment, and as many grants as I could apply for, I renovated a spare room into a functional, modern scientific laboratory and made a point to use it at least once a week for any applicable class. As much as possible, I tried to force the real world through the doors of my classroom and into the lives of my students.

However, facilities alone do not make a student-centered, problem-solving, inquiry-based curriculum. To do this, I set up a curricular model that I taught in four phases:
  • Awareness – high school students need some kind of knowledge base before they can fruitfully engage in inquiry (because if you don’t know what you don’t know, you can’t be expected to do much inquiring). After an introductory activity in which I probed for their prior understanding (and misunderstanding), I provided students with a specific set of notes and guided worksheets to develop their knowledge base so that they could determine what questions to ask. 
  • Interaction – once students reasonably had the knowledge they needed to ask good questions, I provided them with problem-solving opportunities in which they could formatively assess their understanding of this knowledge and apply it in a real world scenario. This wasn’t a cookie-cutter lab where they blindly followed steps as if they were baking a recipe. These were truly inquiry-based experiences in which students had to make predictions, propose a rationale for their hypothesis, collect data, and explain the patterns in their data using models learned from classroom material. 
  • Mastery – in the interaction phase, students were guided and coached by their teacher to reach a point in which they could reflect and come to a logical conclusion. The mastery phase was the time for me as the instructor to ‘fade out’ and see if these students could achieve similar results in a less scaffolded and less structured setting. This typically served as part of their summative exam, ending their lesson in a real-world manner. 
  • Career Preparation – in preparation for their eventual college- and career-goals, my students developed career-and-college portfolios, took part in 15 hours of career experiences outside of class, and took part in an exit interview in which they connected the lessons learned in class to what they intended to do after high school. This component was pure acquisition-based education and provided a chance for their classroom-learned knowledge and skills to be applied.
What I have just described also happens to be very reflective of the structure of the 2015 AFNR National Standards, which are organized in three levels.

-       The broadest level entails the Common Career Technical Core (CCTC) Standards – these are standards that apply to all types of CTE courses.

-       Within the CCTC standards are the Performance Indicators. These are the “actual standards” as we typically think of them, and reflect what the National Council for Agricultural Education (or “The Council”) believes to be the specific content necessary for proficiency in a given agricultural course.
-      
Finally, each Performance Indicator has Sample Measurements. These sort of look like what we would assume are the standards, but are actually more like suggestions for what a teacher could provide in their curriculum to satisfy the Performance Indicators and the 2015 AFNR National Standards as a whole. 


The sample measurements are also reflective of problem solving approaches in education. These measurements are organized into three columns, with the leftmost column being the standards pertaining to awareness (terms, vocab, concepts, etc.). The middle column includes the intermediate concepts, which involve the application of the basic knowledge for a given Performance Indicator. The rightmost column includes the mastery concepts. These tend to focus on having students make predictions about unknown situations, apply lessons in a manner similar or identical to a workplace situation, or utilize large amounts of content to reach a conclusion. Notice that Mastery does not consist of perfect memorization of terms or concepts; this is still the Awareness level (the most basic of the three). Mastery can only come about when a student is able to apply their decision-making skills in a real-world scenario, often in a group-based situation that involves hypothesis formation, data collection & analysis, and communication of interpretations.

Examples of Student-Centered, Problem Solving Approaches
It took me the better part of a 10-year stretch in classrooms to reach a point in which I felt comfortable about my effectiveness with these methods and ideas (let alone to even realize that they existed). My work was far from perfect but my descriptions below might help you to get a better grasp of what I am describing.

One of my more-effective examples of using a problem-solving approach was in my introductory Agriscience course. This two-semester course focused on the scientific method, the carbon cycle, cellular respiration, and photosynthesis in the first semester, and on genetics and biotechnology in the second semester. This might sound very different from an introductory agricultural course in other schools, but the point was to enable my students to understand the systems that serve as the basis of all of agriculture, food and natural resources. Agriculture at its simplest is really about the acquisition of biomass in a manner that is productive for human needs. Photosynthesis serves as the source of all carbon for carbon-based life & biomass, respiration is the process in which these organic carbon molecules are used to produce the cellular energy (ATP) that is necessary for acquiring and building that biomass, and genetics pertains to how these processes can be made more efficient and productive. In short, if a student can understand these three processes, they are then capable of developing a deep comprehension of all factors, decisions, and considerations in any field of agriculture.

The unit on cellular respiration was a challenging one to teach, especially to a class primarily made up of freshmen in high school. As with all my lessons, students began with an Awareness portion of the material. After asking how the breakfast they had consumed an hour earlier became the energy they needed for the rest of the day (and making them aware of the gaps and misconceptions in their thinking), I allowed for time for students to independently complete a set of notes. Once students had developed a base of knowledge from which they could start the inquiry process, I provided them with the first example of Interaction; students had to work on dry erase boards in teams of four to develop five ways in which they could engineer the cells of cattle to produce more ATP, enabling the animals to become more productive. After a sufficient amount of time, I brought the students back together and randomly called on groups using a set of dice. Regardless of whether their ideas were right or wrong, I asked them to explain their rationale behind the ideas they proposed. I used another randomly-selected group to critique their ideas. We as a class came to a consensus about each idea, and my coaching ensured that they reached the right conclusions without “telling them the right answer” by questioning their responses so that they could see their own gaps in logic and knowledge. The most powerful tool I had in this phase was the phrase, “Tell me more…what are you thinking?”

After a quick multiple choice quiz to a) make sure that all students were at a level of proficiency necessary for moving on and b) to make sure that students took the time to ‘cement’ the knowledge in their mind, we moved on to the Mastery level. In the week that followed, students were challenged to determine the changes to cellular respiration that resulted from different kinds of carbohydrate “feeds” and explain these differences using their base knowledge from the previous week. To do this, students used yeast cells and measured the differences in the CO2 production during the respiration of different kinds of carbohydrates (sugar, starch, and fiber).

Students began with a cookie cutter lab so that they could become familiar with the equipment and protocols. They then redesigned the lab by changing an independent variable (e.g. adding caffeine, increasing the temperature, using fiber instead of sugar, etc.). They made their predictions about what effects the changes would cause, proposed rationales for their reasoning, collected data, identified patterns, and proposed models based on their prior material to explain their results. By the end of the week, they worked in teams completely unassisted by their instructor. Their reasoning was developed and critiqued within and among their groups. They applied their reasoning to other scenarios such as cattle or corn, knowing that their model organisms were representing the same cellular processes that occur in essentially all living organisms. While their education on the topic began as learning, it concluded with acquisition, ensuring that they could reach mastery while also being consciously aware of the specific set of knowledge and skill that they were mastering.

Other classes worked in a similar manner. My vet students first debated how and when sutures became necessary for a wound to fully heal before completing independent notes on the topic of suturing. This was followed by videos and demonstrations of me performing suturing, concluding with each student performing and practicing suturing on bananas. Students in my Agribusiness course discussed and then completed notes on the principles of marketing, followed by addressing hypothetical marketing scenarios for a business, and concluding with developing a marketing plan for their own future business that they could create while they were still in high school (which some did). Students in my Natural Resources class followed notes and discussion of habits with predictions and calculations of biodiversity in different portions of the school forest in relation to the quality of the habitat in those areas.

In each case, the instruction was designed to allow students to eventually address specific real-world problems or considerations. Student responses were not judged as right or wrong, but defendable or not defendable based on argumentation and discussion so as to allow them to function independently without their teacher. Students did not learn obscure facts as much as they learned underlying phenomena that helped them to explain real-world considerations such as why fertilizer was necessary for a field, how the type of crop affected the sustainability and carbon-neutrality of a biofuel, or how invasive species could decimate an ecosystem. Their education in my classroom often began as learning but continuously progressed until it was more about acquisition-based education through situations that were as real-world as a classroom environment could provide.

Conclusion
My high school French teacher once lamented that she couldn’t kidnap us and leave us alone in Paris. Looking back, I now realize two things: 1) that was a terrifying statement when taken out of context, and 2) she was absolutely correct in her realization that what we were learning in her classroom could never compare to how we could learn a language like French when immersed among native French speakers. Similarly, agricultural educators could never provide the level of education that could be achieved if our students could be immersed in an environment like a farm, forest, laboratory, clinic, or corporate headquarters. However, we can strive to create environments in our classrooms that reflect the real-world scenarios that occur only outside of high schools through strategies such as the problem solving approach.

Utilizing acquisition-based teaching methods such as the student-centered instruction, the problem-solving approach, inquiry-based education, experiential learning, and others can be challenging. Many teachers did not have similar experiences as students, making it hard to envision what this kind of curriculum might look and feel like in practice. It can often feel like students aren’t learning as much because they are covering fewer concepts (but gaining a much deeper comprehension of those concepts). Classroom management can be a challenge when students are encouraged to work in teams and converse with each other instead of just quietly taking notes or completing worksheets.

However, while these methods have their challenges, the benefits certainly seem to outweigh the drawbacks. If in doubt, remember back to your own student experiences and ask yourself which lessons were most enjoyable or most impactful. How many of us fondly remember taking multiple choice tests and writing endless notes? How many of us forgot all of the material on a long multiple choice exam by the time we got our grades back? On the other hand, how many of us really enjoyed taking part in labs that felt like real world situations? How many of us preferred to work in groups on projects in which we had some control and decision-making opportunities? How much more valuable did our education seem when it the connections to our future lives were unquestionably obvious? 


In my experience as a teacher, the greatest feeling of success only occurred when I knew I was no longer needed, when my students could stand with me as an equal and I could have confidence in knowing that their success in life was as inevitable as I could make it. Teaching isn’t about telling students the ‘right answers’, whatever they may be. Teaching is a profession in which we make sure that students leave us with the ability to ask questions, determine answers, solve problems, and think critically long after they have stopped worrying about the grades that we would assign to them. To ensure that this can occur, we must enable our students to practice functioning without us and create a classroom environment that enables this to happen on a daily basis.



Craig Kohn

@AgKohn

kohncrai@msu.edu

Previous Contributions to the AEE 412 Methods Blog by Mr. Kohn include:

Monday, November 16, 2015

Guest Blogger Series: Systems-based Learning

Editor's Note: This blog is part of a series of guest contributors from the National school-based agricultural education family. Mr. Craig Kohn is an instructor at Waterford Union High School outside of Milwaukee, WI. He has is heavily involved with state and national ag ed initiatives, including the new AFNR standards, the National SAE Renewal Taskforce, and is on a focus advisory group for the National FFA. Prior to becoming an ag instructor, Mr. Kohn conducted research in fields of medicine, ecology, and education at the University of Wisconsin - Madison, where he earned degrees and licenses in agriscience, education, agricultural education, and biology education. Mr. Kohn also has a license to teach environmental science. He will be starting a doctorate in Curriculum, Instruction, and Teacher Education at Michigan State University in 2016. Mr. Kohn was raised on a dairy farm in northeastern Wisconsin near Green Bay, where he raised dairy, beef, swine, horses, goats, and chickens and was actively involved in environmental and ecological experiences on his home farm.

Agriculture is comprised of complex systems.
Agricultural education should be
taught in a manner that reflects this reality
in order to enable students to appreciate
and comprehend the extent of this complexity
As I am writing this on our way home from the National FFA Convention in Louisville, I am regularly checking on the score for the Wisconsin Badgers football team. Football often makes a great analogy for many other aspects of life because it resembles the reality of much of our day to day existence. It is a complicated network of interconnected factors resulting in an ultimate outcome that is either failure or success. To anyone with a passion for this game, a traditional physical education unit on football can sometimes be frustrating because our understanding of this intricate system is often measured (at least in part) by something as mundane as whether or not we know the width of the field in which all of this occurs. I think it is fair to say that for many students with a passion for the game, units on football in physical education sometimes fail to compare to the excitement and challenges of actually playing the game.

Introductory Agriscience students checking
their results from the
Radish Races experiment
on the carbon cycle. 
Many of the subjects we teach at the secondary level are reflective of this phenomenon. All too often, instructors try to teach their subjects as a series of unconnected independent facts when, in reality, the true nature of the subject that they teach is more like a system of interconnected and often-changing factors that cannot be distilled into something that can be measured by a multiple-choice test. 

Nearly every aspect of adult life is part of a system. For example, when you get behind the wheel of a car, there are thousands of combinations of circumstances that govern how you can safely and effectively get that automobile from point A to point B, and this process can change from day to day. It's not enough to know that turning a key, shifting some gears, and pushing a gas pedal enable a car to move. This is precisely why classroom instruction in a driver's education course is always immediately followed by behind the wheel experiences that last for weeks. While learning to drive a car must begin with the fundamentals of the car itself, none of us would want to get on the highway with a generation of students who learned to drive solely from a textbook and a multiple choice exam. 

As agricultural instructors, our subject matter entails one of the most complicated networks of systems on the planet. Consider the multitude of factors that go into the seemingly-mundane process of turning a kernel of corn into the dinner that someone will consume. The conversion of this kernel into a stalk that will become food is governed by a multitude of factors including the billions of base pairs in its DNA, the interactions of widely and rapidly changing weather patterns, ecosystem services such as decomposition and pollination, the expertise of the producer, the functions of the machinery, the rise and fall of market prices, always-changing government policies, the presence or lack thereof of wildlife, consumer preferences and opinions, the economic productivity of the United States and its 300 trading partners, and many, many more factors. Agriculture is perhaps the most complex system on our globe and there is almost nothing in the existence of modern humans that has not affected how a corn kernel becomes the next meal. 

 We teach a complicated subject, a subject that is complicated because it is the result of the interplay of multiple systems. By definition, a system is a series of interconnected factors and influences that result in an identifiable outcome. A system can be a dynamic thing to teach, and a systems-based curriculum can engage students because it can turn what seems like an incredibly-complex and volatile series of events into something that is comprehensible and predictable.

Students measuring the cellular respiration rates of yeast cells
treated with protocols of their own design. 
The problem is that traditionally, teachers taught rules, definitions, and individual concepts rather than systems. Many of our experiences as students in agricultural education likely reflected this constrained educational philosophy - memorize these breeds, learn these statistics, label these parts, memorize these terms, etc. Had our education ended with just the classroom, we would have ended up with a terribly-constrained education. Hopefully, you as a teacher (or a future teacher) incorporate FFA and SAEs into your own instruction because these opportunities provide students with the chance to experience the complexity of the systems that comprise agriculture and much of life. 

However, there is absolutely no reason as to why systems cannot be taught in the classroom. While we as instructors should begin at an appropriate level for our students' learning needs, we need to advance to the highest levels of Bloom's Taxonomy by teaching in a manner that utilizes these systems. 

So how do we do this? I certainly don't have all the answers but what I can do is describe how I approach this complicated task of teaching systems. I don't always succeed, but I have experienced that uniquely-wonderful moment of seeing when my students have finally "gotten it" and have seen clear evidence of students understanding the big picture, which gives me reason to believe that maybe what I am doing is along the right track. 

When my freshmen students enter my introductory classes each fall, I begin by giving each group of 4 students two trays of soil and a petri dish of radish seeds. The task for each group is simple: change one of the trays so that those radish seedlings grow taller than the other untreated tray. Whether it be a treatment of diluted Gatorade, mixing in coffee grounds, extra lighting, a weak solution of adrenaline, or whatever hypothesis their young minds can generate, each student attempts a novel method of growing a taller group of radishes. Unsurprisingly, most fail in their quest to grow a bigger radish. 

However, it doesn't matter whether they succeed or not. What matters is that I've gotten my students into the game of agriculture. They don't care about definitions or concepts. They want to know if their treatment of diluted Red Bull somehow made their plants grow taller.

Students using Play-doh and toothpicks to show how carbon molecules change as they move through the carbon cycle during photosynthesis and respiration. 
The beauty of this approach is that questions naturally arise. After some obligatory laboratory safety, we begin considering the carbon cycle. We try to determine how it is that this tiny seed can become a much larger radish plant. We focus on how carbon dioxide in the air is combined with water in the soil to make mass of the leaves and stems and roots that we can physically touch. Students soon begin to understand that all of agriculture is really just finding ways to directly or indirectly convert water and carbon dioxide into food, fuel, and fiber. They begin to comprehend that a regulated carbon cycle is what enables all life on earth to exist because all life is carbon-based. To understand this, they must know the difference between an element, molecule, cell, tissue, organ, and more. While terms are taught, they are taught in a manner that represents a larger idea, and this context makes what would otherwise be mundane material feel relevant, necessary, and interesting. 

My students then are introduced to the nature of the chemical energy that powers all cells. They learn how the sugars produced by the plant during photosynthesis provide the hydrogen protons that turn ATP Synthase to make ATP in the mitochondria, and that oxygen removes this hydrogen so that the process can continue. They comprehend that the more ATP that is produced, the more that cells can function and the more that cells can divide. They connect increased ATP production to increased crop and animal production. They see that all living things are connected in their need to produce ATP, and their evolutionary strategies largely stem from this need. They learn that breathing lungs, beating hearts, digesting stomachs, and almost every bodily function in some way relates to sustaining the nonstop ATP production that in turn enables bodily growth and productivity.

Agriscience students extracting DNA
from strawberries after making predictions
about what it would look like
(and if it would even be visible). 
They then move on to photosynthesis and focus on how those plants cells produce sugar. They connect the necessity of water, sun, and carbon dioxide to the production of sugar. They grasp why aerated soil and plentiful supplies of nitrogen, potassium, and phosphorus are necessary for those plants to grow and their cells to function. 
 
Comprehension of these three systems (the carbon cycle, cellular respiration, and photosynthesis) then enable a student to understand practically any process in agriculture.  Once they know the "rules" of living organisms, there is nothing in agriscience or environmental science that they cannot grasp. From plowing a field in fall to installing ventilation fans in a barn to the application of fertilizers to the concerns related to climate change, all of the considerations that are a part of agriculture begin to make sense when viewed through these systems. These systems provide students with a framework to understand their observations and answer their questions that arose as they worked with living organisms and natural processes in inquiry-based labs. My students are playing the “game” of agriculture and because of this, they want to learn the "rules" that explain why what they are observing is happening.

When these introductory students return in the spring, they learn genetic systems and can understand and comprehend how we can use DNA and inheritance to change how cells function to improve the efficiency and productivity of plants and animals. For the rest of the year, we use the system of DNA to understand every level of biotechnology from Mendel to genomics to cloning.

Students in my other ag courses rely heavily on systems as well. Veterinary students learn how to check vital signs as a method for assessing how to address emergency responses. Students in Agribusiness begin by mastering economics and learn how opportunity costs and benefits affect decision making. Students in Natural Resources consider how biodiversity and extinction affect ecosystem function in order to grasp why specific management decisions are made. Students in Landscape Design learn all about how balance, emphasis, transition and other elements of design affect whether a presentation will be appealing or appalling to the eye. Systems govern every class I teach because they enable my students to learn and answer their own questions long after I have faded into the distant recesses of their memory. 

Students in Biotechnology & Bioenergy test the
efficiency of fossil fuels as compared to biodiesel and 
ethanol and test hypotheses formed using their 
understanding of the chemical nature of combustion. 
 
While I would never go back to a method of teaching that did not involve systems, it also true that there are disadvantages to this approach. First and foremost, it is harder to teach. Most of us did not experience this kind of instruction as students, and so it can be hard to know what it should look like when it's effective. It requires far more interaction and inquiry because students need to experience the systems to appreciate their complexity. Often this means writing your own curriculum from scratch. Having designed and written over a dozen classes myself, I can attest that it can be hard to find effective and appropriate examples of systems- and inquiry-based education that work in different classroom environments. 

Finally, it can be very hard to assess a student who has been taught in this way. While a multiple choice test can be a great formative assessment to check for progress, it is a terrible option as a final assessment for a unit. Just as we wouldn't want a student driver to get a license after only passing a written test, we want students in our subject to be assessed in a "behind the wheel" manner for whatever subject we're teaching. In my classes, this can involve authentic assessments such as diagnosing a veterinary disorder by performing a physical exam on a cow, creating and critiquing a landscape design project for the school, or producing and evaluating biodiesel in my laboratory. Over time I have found ways to lessen my dependence on written exams and have tried to reduce the excesses of rote learning in my program, but it remains an ongoing battle. 
 
Students working with a local veterinarian to perform a pregnancy check using their systemic understanding of reproductive anatomy and endocrinology.
Ultimately, if we are successful at teaching systems, we should be preparing our students to apply their knowledge and skills in order to understand and address legitimate problems. I have long since forgotten the mundane facts I memorized in high school and college, but I find myself constantly applying what I know about the systems to the experiences that I have each day. Agricultural education provides phenomenal opportunities to help students understand the function of the world at large due to its close relationship to systems in biology, ecology, economics, engineering, medicine, and much more. The key is for each instructor to know and grasp the endless opportunities at their disposal to teach using these systems. By going beyond rote facts and memorization to teach students to comprehend and use the systems embodied in agriculture to solve problems and create solutions, you will provide an education that will remain with your students long after they have left your classroom in a manner that embodies the greatest ideals of agricultural education.

People are often concerned about how excited I get about teaching techniques, and I can talk forever about curriculum and instruction as well as my own teaching experiences. 

If for some reason that sounds appealing to you and you want to discuss this further, or if you have any questions, feel free to email me at ckohn@waterforduhs.k12.wi.us

All of my curriculum can be found (and downloaded for free) at wuhsag.weebly.com . Changes and updates are made regularly to this website so feel free to check for new versions of the material.