fix(card): improve SM-2 algorithm An An SM-2 algorithm for LEARNING/RElearning cards now uses correct steps ( RELEARNING_STEPS for relearning cards)
Ultraworked with [Sisyphus](https://github.com/code-yeongyu/oh-my-opencode) Co-authored-by: Sisyphus <clio-agent@sisyphuslabs.ai>
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@@ -126,7 +126,7 @@ function scheduleNewCard(ease: ReviewEase, currentFactor: number): {
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};
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}
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function scheduleLearningCard(ease: ReviewEase, currentFactor: number, left: number): {
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function scheduleLearningCard(ease: ReviewEase, currentFactor: number, left: number, isRelearning: boolean): {
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type: CardType;
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queue: CardQueue;
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ivl: number;
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@@ -134,12 +134,13 @@ function scheduleLearningCard(ease: ReviewEase, currentFactor: number, left: num
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newFactor: number;
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newLeft: number;
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} {
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const steps = SM2_CONFIG.LEARNING_STEPS;
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const steps = isRelearning ? SM2_CONFIG.RELEARNING_STEPS : SM2_CONFIG.LEARNING_STEPS;
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const totalSteps = steps.length;
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const cardType = isRelearning ? CardType.RELEARNING : CardType.LEARNING;
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if (ease === 1) {
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return {
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type: CardType.LEARNING,
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type: cardType,
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queue: CardQueue.LEARNING,
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ivl: 0,
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due: Math.floor(Date.now() / 1000) + steps[0] * 60,
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@@ -152,9 +153,11 @@ function scheduleLearningCard(ease: ReviewEase, currentFactor: number, left: num
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if (ease === 2) {
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if (stepIndex === 0 && steps.length >= 2) {
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const avgStep = (steps[0] + steps[1]) / 2;
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const step0 = steps[0] ?? 1;
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const step1 = steps[1] ?? step0;
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const avgStep = (step0 + step1) / 2;
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return {
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type: CardType.LEARNING,
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type: cardType,
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queue: CardQueue.LEARNING,
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ivl: 0,
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due: Math.floor(Date.now() / 1000) + avgStep * 60,
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@@ -162,35 +165,26 @@ function scheduleLearningCard(ease: ReviewEase, currentFactor: number, left: num
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newLeft: left,
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};
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}
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if (stepIndex < steps.length - 1) {
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return {
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type: CardType.LEARNING,
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queue: CardQueue.LEARNING,
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ivl: 0,
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due: Math.floor(Date.now() / 1000) + steps[stepIndex] * 60,
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newFactor: currentFactor,
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newLeft: left,
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};
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}
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const ivl = SM2_CONFIG.GRADUATING_INTERVAL_GOOD;
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const currentStepDelay = steps[stepIndex] ?? steps[0] ?? 1;
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return {
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type: CardType.REVIEW,
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queue: CardQueue.REVIEW,
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ivl,
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due: calculateDueDate(ivl),
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newFactor: SM2_CONFIG.DEFAULT_FACTOR,
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newLeft: 0,
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type: cardType,
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queue: CardQueue.LEARNING,
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ivl: 0,
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due: Math.floor(Date.now() / 1000) + currentStepDelay * 60,
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newFactor: currentFactor,
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newLeft: left,
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};
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}
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if (ease === 3) {
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if (stepIndex < steps.length - 1) {
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const nextStep = stepIndex + 1;
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const nextStepDelay = steps[nextStep] ?? steps[0];
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return {
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type: CardType.LEARNING,
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type: cardType,
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queue: CardQueue.LEARNING,
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ivl: 0,
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due: Math.floor(Date.now() / 1000) + steps[nextStep] * 60,
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due: Math.floor(Date.now() / 1000) + nextStepDelay * 60,
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newFactor: currentFactor,
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newLeft: nextStep * 1000 + (totalSteps - nextStep),
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};
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@@ -361,7 +355,7 @@ export async function serviceAnswerCard(
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nextReviewDate: calculateNextReviewTime(result.ivl),
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};
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} else if (card.type === CardType.LEARNING || card.type === CardType.RELEARNING) {
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const result = scheduleLearningCard(ease, card.factor, card.left);
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const result = scheduleLearningCard(ease, card.factor, card.left, card.type === CardType.RELEARNING);
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updateData = {
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type: result.type,
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queue: result.queue,
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