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If [tex]\sqrt{x - i y} = a - i b[/tex], prove that [tex]\sqrt{x + i y} = a + i b[/tex].

Sagot :

GinnyAnsweridn
To prove that if [tex]\(\sqrt{x - i y} = a - i b\)[/tex], then [tex]\(\sqrt{x + i y} = a + i b\)[/tex], we can follow a step-by-step logical approach using properties of complex numbers:

1. Given Equation:
[tex]\[ \sqrt{x - i y} = a - i b \quad \text{(1)} \][/tex]

2. Conjugate Both Sides:
The conjugate of a complex number [tex]\(z = u + iv\)[/tex] is [tex]\(\overline{z} = u - iv\)[/tex].
Applying the conjugate to both sides of equation (1):
[tex]\[ \overline{\sqrt{x - i y}} = \overline{a - i b} \][/tex]

3. Properties of Conjugates:
Using the property of complex conjugates, the conjugate of the square root of a complex number is the same as the square root of the conjugate of that number. Thus,
[tex]\[ \sqrt{\overline{x - i y}} = a + i b \quad \text{(since} \ \overline{a - i b} = a + i b\text{)} \][/tex]

4. Simplify the Conjugate:
The conjugate of [tex]\(x - i y\)[/tex] is [tex]\(x + i y\)[/tex]. Therefore,
[tex]\[ \sqrt{x + i y} = a + i b \][/tex]

Thus, we have shown that if [tex]\(\sqrt{x - i y} = a - i b\)[/tex], then it follows that [tex]\(\sqrt{x + i y} = a + i b\)[/tex].

This completes the proof.
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