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January 10, 2020 14:46
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Supermemo 2 Algorithm, Unobscured (Python 3)
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{ | |
"cells": [ | |
{ | |
"cell_type": "code", | |
"execution_count": 2, | |
"metadata": {}, | |
"outputs": [], | |
"source": [ | |
"# Polyglot spaced repetition algorithm" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 3, | |
"metadata": {}, | |
"outputs": [], | |
"source": [ | |
"%matplotlib inline" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"A spaced repetition algorithm is a function that takes a user's subjective measurement of the difficulty of an item the user was tested on, and delays seeing that item by a certain amount of time. Over many items, this yields an ordering that changes. Each item you review next is pulled from this dynamically calculated ordering.\n", | |
"\n", | |
"\n", | |
"$$\\text{number of items in this lesson} = n$$\n", | |
"$$\\text{list of items to review} = E = \\{i_0, \\ldots , i_n \\}$$\n", | |
"$$\\text{order} = f(x) = \\ldots$$\n", | |
"\n", | |
"Based on \"SM2+\":\n", | |
"\n", | |
"$$\\text{performance rating from the user} = x$$\n", | |
"$$\\text{easiness previously observed} = e_{t-1}$$\n", | |
"$$\\text{easiness} = e = -0.8 + 0.28x +0.02x^2 + e_{t-1}$$\n", | |
"$$\\text{consecutive correct answers} = r$$\n", | |
"\n", | |
"For correct answers:\n", | |
"\n", | |
"$$f(x) = 6e^{r-1} = 6*(-0.8 + 0.28x +0.02x^2 + e_{t-1})^r$$\n", | |
"\n", | |
"For incorrect answers, units of days:\n", | |
"\n", | |
"$$f(x) = 1$$\n", | |
"\n", | |
"(1 day for incorrect items because you want to test as soon as possible, since clearly the user did not remember well)\n", | |
"\n", | |
"SM2's delay boils down to:\n", | |
"\n", | |
"$$ \\text{rating of how easy the question was} = x$$\n", | |
"$$0 \\leq x$$\n", | |
"$$f(x) = \\left( x+x^2 \\right)^r$$\n", | |
"\n", | |
"\n", | |
"$$x = {x_0, x_1, \\ldots, x_t}$$\n", | |
"$$x_i \\in \\{0,1,2,3,4,5\\} \\> \\forall \\, i \\leq t$$\n", | |
"$$r = \\text{consecutive correct answers, or 0 if} \\> x_t \\text{was incorrect}$$\n", | |
"$$f_t(x_t) = a(\\sum_{i=0}^{t}{b+cx_i+dx_i^2})^{\\theta r-1}$$" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 52, | |
"metadata": {}, | |
"outputs": [], | |
"source": [ | |
"def sm2(x: [int], a=6.0, b=-0.8, c=0.28, d=0.02, theta=0.2) -> float:\n", | |
" \"\"\"\n", | |
" Returns the number of days to delay the next review of an item by, fractionally, based on the history of answers x to\n", | |
" a given question, where\n", | |
" x == 0: Incorrect, Hardest\n", | |
" x == 1: Incorrect, Hard\n", | |
" x == 2: Incorrect, Medium\n", | |
" x == 3: Correct, Medium\n", | |
" x == 4: Correct, Easy\n", | |
" x == 5: Correct, Easiest\n", | |
" @param x The history of answers in the above scoring.\n", | |
" @param theta When larger, the delays for correct answers will increase.\n", | |
" \"\"\"\n", | |
" assert all(0 <= x_i <= 5 for x_i in x)\n", | |
" correct_x = [x_i >= 3 for x_i in x]\n", | |
" # If you got the last question incorrect, just return 1\n", | |
" if not correct_x[-1]:\n", | |
" return 1.0\n", | |
" \n", | |
" # Calculate the latest consecutive answer streak\n", | |
" num_consecutively_correct = 0\n", | |
" for correct in reversed(correct_x):\n", | |
" if correct:\n", | |
" num_consecutively_correct += 1\n", | |
" else:\n", | |
" break\n", | |
" \n", | |
" return a*(max(1.3, 2.5 + sum(b+c*x_i+d*x_i*x_i for x_i in x)))**(theta*num_consecutively_correct)" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 53, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"9.458300066760838" | |
] | |
}, | |
"execution_count": 53, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[2,1,3,3,4,1,2,3,4])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 54, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"7.329342743905306" | |
] | |
}, | |
"execution_count": 54, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[3])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 69, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"15.068222995109046" | |
] | |
}, | |
"execution_count": 69, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[3, 1, 5, 3, 5])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 55, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"1.0" | |
] | |
}, | |
"execution_count": 55, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 0, 1])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 56, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"1.0" | |
] | |
}, | |
"execution_count": 56, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 57, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"1.0" | |
] | |
}, | |
"execution_count": 57, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 0, 1, 2])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 58, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"6.323243712370701" | |
] | |
}, | |
"execution_count": 58, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 1, 2, 3])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 59, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"7.018687988451514" | |
] | |
}, | |
"execution_count": 59, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 1, 2, 3, 3])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 60, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
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"1.0" | |
] | |
}, | |
"execution_count": 60, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 1, 2, 3, 2])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 61, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"10.595539477949636" | |
] | |
}, | |
"execution_count": 61, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[0, 1, 2, 3, 3, 5])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 64, | |
"metadata": {}, | |
"outputs": [ | |
{ | |
"data": { | |
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"154.94996798742838" | |
] | |
}, | |
"execution_count": 64, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"sm2(x=[5, 5, 5, 5, 5, 5, 5])" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": null, | |
"metadata": {}, | |
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} | |
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def supermemo_2(x: [int], a=6.0, b=-0.8, c=0.28, d=0.02, assumed_score=2.5, min_score=1.3, theta=1.0) -> float: | |
""" | |
Returns the number of days until seeing a problem again based on the | |
history of answers x to the problem, where the meaning of x is: | |
x == 0: Incorrect, Hardest | |
x == 1: Incorrect, Hard | |
x == 2: Incorrect, Medium | |
x == 3: Correct, Medium | |
x == 4: Correct, Easy | |
x == 5: Correct, Easiest | |
@param x The history of answers in the above scoring. | |
@param theta When larger, the delays for correct answers will increase. | |
""" | |
assert all(0 <= x_i <= 5 for x_i in x) | |
correct = [x_i >= 3 for x_i in x] | |
# If you got the last question incorrect, just return 1 | |
if not correct[-1]: | |
return 1.0 | |
# Calculate the latest consecutive answer streak | |
r = 0 | |
for c_i in reversed(correct): | |
if c_i: | |
r+=1 | |
else: | |
break | |
return a*(max(min_score, assumed_score + sum(b+c*x_i+d*x_i*x_i for x_i in x)))**(theta*r) |
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function daysTillNextTestAlgorithm(recent, x, a = 6.0, b = -0.8, c = 0.28, d = 0.02, theta = 0.2) { | |
if (recent < 4) { | |
return 1 | |
} | |
const history = [recent, ...x] | |
// Calculate latest correctness streak | |
let streak = 0 | |
for (let i = 0; i < history.length; i++) { | |
if (history[i] > 3) { | |
streak++ | |
} else { | |
break | |
} | |
} | |
// Sum up the history | |
const historySum = history.reduce( | |
(prev, val) => prev + (b + (c * val) + (d * val * val)), | |
0 | |
) | |
return a * Math.pow(Math.max(1.3, 2.5 + historySum), theta * streak) | |
} |
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