... |
... |
@@ -2,8 +2,6 @@ |
2 |
2 |
|
3 |
3 |
* ((( ==== **[[Beginner >>||anchor = "HBeginner-1"]]** ==== ))) |
4 |
4 |
|
5 |
|
-* ((( ==== **[[Advanced >>||anchor = "HAdvanced-1"]]** ==== ))) |
6 |
|
- |
7 |
7 |
=== **Beginner** === |
8 |
8 |
|
9 |
9 |
=== [[A NEURON Programming Tutorial - part C>>http://web.mit.edu/neuron_v7.4/nrntuthtml/tutorial/tutC.html||rel=" noopener noreferrer" target="_blank"]] === |
... |
... |
@@ -42,36 +42,4 @@ |
42 |
42 |
**Level**: beginner(%%) **Type**: interactive tutorial |
43 |
43 |
|
44 |
44 |
In this beginner tutorial you will learn how to make a simple model using hoc and how to use NEURON's graphical tools to create an interface for running simulations and to modify the model itself. |
45 |
|
-=== [[The hoc programming language>>https://neuron.yale.edu/neuron/static/docs/programming/hoc_slides.pdf||rel=" noopener noreferrer" target="_blank"]] === |
46 |
46 |
|
47 |
|
-**Level**: beginner(%%) **Type**: slide deck |
48 |
|
- |
49 |
|
-Slides from a presentation on hoc syntax. Clear and concise. Includes an example of program analysis (walkthrough of code for a model cell generated by the CellBuilder). |
50 |
|
-=== [[A NEURON Programming Tutorial - Part E>>http://web.mit.edu/neuron_v7.4/nrntuthtml/tutorial/tutE.html||rel=" noopener noreferrer" target="_blank"]] === |
51 |
|
- |
52 |
|
-**Level**: beginner(%%) **Type**: user documentation |
53 |
|
- |
54 |
|
-After this tutorial, students will be able to save data from the simulations and methods for increasing simulation speed. |
55 |
|
-=== **Advanced** === |
56 |
|
- |
57 |
|
-=== [[Reaction-Diffusion – Radial Diffusion>>https://neuron.yale.edu/neuron/docs/radial-diffusion||rel=" noopener noreferrer" target="_blank"]] === |
58 |
|
- |
59 |
|
-**Level**: advanced(%%) **Type**: - |
60 |
|
- |
61 |
|
-Using NEURON Radial diffusion can be implemented in rxd using multicompartment reactions. By creating a series of shells and borders with reactions between them dependent the diffusion coefficient. |
62 |
|
-=== [[Reaction-Diffusion Example – Calcium Wave>>https://neuron.yale.edu/neuron/docs/reaction-diffusion-calcium-wave||rel=" noopener noreferrer" target="_blank"]] === |
63 |
|
- |
64 |
|
-**Level**: advanced(%%) **Type**: interactive tutorial |
65 |
|
- |
66 |
|
-The model presented in this tutorial generates Ca2+ waves and is a simplification of the model we used in Neymotin et al., 2015. |
67 |
|
-=== [[Reaction-Diffusion – 3D/Hybrid Intracellular Tutorial>>https://neuron.yale.edu/neuron/docs/3dhybrid-intracellular-tutorial||rel=" noopener noreferrer" target="_blank"]] === |
68 |
|
- |
69 |
|
-**Level**: advanced(%%) **Type**: interactive tutorial |
70 |
|
- |
71 |
|
-This tutorial provides an overview of how to set up a simple travelling wave in both cases. |
72 |
|
-=== [[Reaction-Diffusion – Initialization strategies>>https://neuron.yale.edu/neuron/docs/initialization-strategies||rel=" noopener noreferrer" target="_blank"]] === |
73 |
|
- |
74 |
|
-**Level**: advanced(%%) **Type**: interactive tutorial |
75 |
|
- |
76 |
|
-In this tutorial you will learn how to implement cell signalling function in the reaction-diffusion system by characterising your problems by the answers to three questions: (1) Where do the dynamics occur, (2) Who are the actors, and (3) How do they interact? |
77 |
|
- |