diff --git "a/PL9fwy3NUQKway0xLRTe7OlRxcQic7R2s-/JynOvdHtkQI_raw.json" "b/PL9fwy3NUQKway0xLRTe7OlRxcQic7R2s-/JynOvdHtkQI_raw.json" new file mode 100644--- /dev/null +++ "b/PL9fwy3NUQKway0xLRTe7OlRxcQic7R2s-/JynOvdHtkQI_raw.json" @@ -0,0 +1 @@ +{"segments": [{"id": 1, "seek": 1570, "start": 1.58, "end": 15.7, "text": "In the name of God, Most Gracious, Most Merciful. 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You might ask, what are these colors? 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So why do I want to know the point spread function? Because it's known that I have a rule. 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Because when the point spread function is smaller, its limits are smaller, it means that its interaction with the point spread function of the second point is less, and of the third point is less, and we said that the stigmatic image, which is the image of the original quality, which is the original quality must be a point, like the object is a point", "tokens": [2278, 2946, 264, 14949, 11, 983, 30, 1436, 562, 264, 935, 3974, 2445, 307, 4356, 11, 1080, 10406, 366, 4356, 11, 309, 1355, 300, 1080, 9285, 365, 264, 935, 3974, 2445, 295, 264, 1150, 935, 307, 1570, 11, 293, 295, 264, 2636, 935, 307, 1570, 11, 293, 321, 848, 300, 264, 342, 20181, 2399, 3256, 11, 597, 307, 264, 3256, 295, 264, 3380, 3125, 11, 597, 307, 264, 3380, 3125, 1633, 312, 257, 935, 11, 411, 264, 2657, 307, 257, 935], "avg_logprob": -0.4626524502911219, "compression_ratio": 1.9690721649484537, "no_speech_prob": 2.5510787963867188e-05, "words": [{"start": 327.0, "end": 327.22, "word": "The", "probability": 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So, as long as I have A as a certain area that I call the point spread function of the area in the image or part of the image, it means that I must know its limits. In order to know its limits, I must follow literally exact ray tracing for hundreds of rays must be exactly traced in order to know the limits of the point spread function.", "tokens": [32, 935, 1355, 300, 316, 4188, 1633, 312, 257, 935, 293, 363, 935, 1355, 300, 363, 4188, 1633, 312, 257, 935, 293, 370, 322, 13, 407, 11, 382, 938, 382, 286, 362, 316, 382, 257, 1629, 1859, 300, 286, 818, 264, 935, 3974, 2445, 295, 264, 1859, 294, 264, 3256, 420, 644, 295, 264, 3256, 11, 309, 1355, 300, 286, 1633, 458, 1080, 10406, 13, 682, 1668, 281, 458, 1080, 10406, 11, 286, 1633, 1524, 3736, 1900, 18592, 25262, 337, 6779, 295, 24417, 1633, 312, 2293, 38141, 294, 1668, 281, 458, 264, 10406, 295, 264, 935, 3974, 2445, 13], "avg_logprob": -0.3790625023841858, "compression_ratio": 2.0458715596330275, "no_speech_prob": 2.86102294921875e-06, "words": [{"start": 349.02, "end": 349.28, "word": "A", "probability": 0.451416015625}, {"start": 349.28, "end": 349.76, "word": " point", "probability": 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On the same scale, the para-axial ray is a very small thing. 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and the yellow one remained in its path. We will say why they remained in their path without breaking. Their meeting point is the image area. The image will be at this point. So why is the yellow ray, which is adjacent to the optical axis, did not undergo any change? Because we should not forget that this is a spherical refracting surface. 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It is true that we assumed from the approximation that this surface is flat, but in the end it is spherical. And any line that extends from the center of the ball to the surface is considered vertical on the surface. 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