:: RUSUB_3 semantic presentation
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:: deftheorem Def1 defines Lin RUSUB_3:def 1 :
theorem Th1: :: RUSUB_3:1
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theorem Th2: :: RUSUB_3:2
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Lm1:
for V being RealUnitarySpace
for x being set holds
( x in (0). V iff x = 0. V )
theorem :: RUSUB_3:3
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theorem :: RUSUB_3:4
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theorem Th5: :: RUSUB_3:5
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theorem :: RUSUB_3:6
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Lm2:
for V being RealUnitarySpace
for W1, W2, W3 being Subspace of V st W1 is Subspace of W3 holds
W1 /\ W2 is Subspace of W3
Lm3:
for V being RealUnitarySpace
for W1, W2, W3 being Subspace of V st W1 is Subspace of W2 & W1 is Subspace of W3 holds
W1 is Subspace of W2 /\ W3
Lm4:
for V being RealUnitarySpace
for W1, W2, W3 being Subspace of V st W1 is Subspace of W2 holds
W1 is Subspace of W2 + W3
Lm5:
for V being RealUnitarySpace
for W1, W2, W3 being Subspace of V st W1 is Subspace of W3 & W2 is Subspace of W3 holds
W1 + W2 is Subspace of W3
theorem Th7: :: RUSUB_3:7
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theorem :: RUSUB_3:8
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theorem :: RUSUB_3:9
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theorem :: RUSUB_3:10
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theorem Th11: :: RUSUB_3:11
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theorem Th12: :: RUSUB_3:12
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:: deftheorem Def2 defines Basis RUSUB_3:def 2 :
theorem :: RUSUB_3:13
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theorem :: RUSUB_3:14
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theorem Th15: :: RUSUB_3:15
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theorem Th16: :: RUSUB_3:16
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theorem :: RUSUB_3:17
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theorem Th18: :: RUSUB_3:18
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theorem Th19: :: RUSUB_3:19
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theorem Th20: :: RUSUB_3:20
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theorem Th21: :: RUSUB_3:21
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theorem Th22: :: RUSUB_3:22
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theorem :: RUSUB_3:23
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theorem :: RUSUB_3:24
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theorem Th25: :: RUSUB_3:25
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Lm6:
for X, x being set st not x in X holds
X \ {x} = X
theorem :: RUSUB_3:26
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theorem :: RUSUB_3:27
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theorem :: RUSUB_3:28
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theorem Th29: :: RUSUB_3:29
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theorem :: RUSUB_3:30
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theorem :: RUSUB_3:31
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theorem Th32: :: RUSUB_3:32
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theorem :: RUSUB_3:33
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theorem :: RUSUB_3:34
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theorem Th35: :: RUSUB_3:35
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theorem :: RUSUB_3:36
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theorem :: RUSUB_3:37
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theorem :: RUSUB_3:38
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theorem :: RUSUB_3:39
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theorem :: RUSUB_3:40
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theorem :: RUSUB_3:41
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theorem :: RUSUB_3:42
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theorem :: RUSUB_3:43
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theorem :: RUSUB_3:44
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theorem :: RUSUB_3:45
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