Question
Download Solution PDFk के पूर्णांक मानों की संख्या क्या है जिसके लिए समीकरण 2sinx = 2k + 1 का एक हल है?
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFअवधारणा:
a sin x + b cos x का न्यूनतम और अधिकतम मान
-\(\rm \sqrt{a^{2} + b^{2}}\) ≤ a sin x + b cos x ≤ \(\rm \sqrt{a^{2} + b^{2}}\)
गणना:
जैसा कि हम जानते हैं, -\(\rm \sqrt{a^{2} + b^{2}}\) ≤ a sin x + b cos x ≤ \(\rm \sqrt{a^{2} + b^{2}}\)
⇒ -\(\rm \sqrt{2^{2} + 0^{2}}\) ≤ 2sin x + 0 cos x ≤ \(\rm \sqrt{2^{2} + 0^{2}}\)
⇒ -2 ≤ 2sin x ≤ 2
⇒ -2 ≤ 2k + 1 ≤ 2
⇒ -3 ≤ 2k ≤ 1
⇒ -1.5 ≤ k ≤ 0.5
k = 0, -1
इसलिए, विकल्प 3 सही है।
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