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[ZeroAssoluto]

Hi everyone,

[TomC]

Pincers on 9's mean that either r5c8=9 or r9c9=9

This means you can remove the 9's in r6c9 and r78c8

[Mogulmeister]

<68> UR means r7c5 = 9

{ed - still need a step afterwards}

[TomC]

There is an XY chain which starts in r4c4 which goes 5-8-1-4-9-3-5

So r4c4 <>5

[Mogulmeister]

[Mogulmeister]

The very closely related XY chain starts at the pincers for 5 at r6c4 and r4c7 would go:

not 5
is 8 ......................................................................not 3 is 5

(5=8)r4c7-(8=1)r3c7-(1=4)r3c9-(4=9)r6c9-(9=3)r6c3-(3=5)r6c4 => r4c4 < > 5

[Mogulmeister]

Here's a nice ALS xz

Set A {5,7,8,9} 4 candidates so n-1 =3 squares

Set B {2,7,9} 3 candidates so n-1 =2 squares

Restricted Common is 9 found in r578c8

Common Candidate is 7 in r9c7 which is seen by both 7's in A and B so gets eliminated.

[Mogulmeister]

I like the above because they are visual and quite easy to spot (imho).

You could take a chain view of course:

1) (7=5)r6c7-(5=8)r4c7-(8=9)r5c8-(9=27)r78c8 ==> r9c7 < > 7

2) You can also put 7 in r9c7 and go round the loop which would then remove it.

+7r9c7-(7=5)r6c7-(5=8)r4c7-(8=9)r5c8-(9=27)r78c8-(7)r9c7

[TomC]

Thanks Mogulmeister for the clarification, I was not sure about my XY chain (5-8-1-4-9-3-5) as I couldn't find the pincers, but you show that - 5 in r4c4 (also -5 in r6c7)

[TomC]

My first solution should be an XY chain then as if not 9 in r9c9 it is 9 in r5c8

[Mogulmeister]