असमानताओं \(x+y\geq 4\), (x+y<4), \(x\geq 0\) का हल-क्षेत्र कौन सा है?

Which is the solution region of \(x+y\geq 4\), (x+y<4), \(x\geq 0\)?

Explanation opens after your attempt
Correct Answer

B. खाली समुच्चयEmpty set

Step 1

Concept

The first and second inequalities contradict each other. Even on the common boundary, the strict inequality removes the points.

Step 2

Why this answer is correct

The correct answer is B. खाली समुच्चय / Empty set. The first and second inequalities contradict each other. Even on the common boundary, the strict inequality removes the points.

Step 3

Exam Tip

पहली और दूसरी असमानता परस्पर विरोधी हैं। समान सीमा पर भी कठोर असमानता बिंदुओं को हटा देती है।

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Mathematics Answer, Explanation and Revision Hints

असमानताओं \(x+y\geq 4\), (x+y<4), \(x\geq 0\) का हल-क्षेत्र कौन सा है? / Which is the solution region of \(x+y\geq 4\), (x+y<4), \(x\geq 0\)?

Correct Answer: B. खाली समुच्चय / Empty set. Explanation: पहली और दूसरी असमानता परस्पर विरोधी हैं। समान सीमा पर भी कठोर असमानता बिंदुओं को हटा देती है। / The first and second inequalities contradict each other. Even on the common boundary, the strict inequality removes the points.

Which concept should I revise for this Mathematics MCQ?

The first and second inequalities contradict each other. Even on the common boundary, the strict inequality removes the points.

What exam hint can help solve this Mathematics question?

पहली और दूसरी असमानता परस्पर विरोधी हैं। समान सीमा पर भी कठोर असमानता बिंदुओं को हटा देती है।