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nataraj · Posted: Fri Nov 07, 2008 3:17 pm Post subject:

I used:

UR (37) type 4 => r9c2=3

Then, generalized m-wing (2)r2c4=r5c5 (via SL (4) in col 6) => r45c4<>2

x-wing (cols 3,5) and other coloring in (2)

Quite a good puzzle

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

keith · Posted: Fri Nov 07, 2008 4:35 pm Post subject:

XY-wing, X-wing, skyscraper. Interestingly, they all eliminate <2>.

After basics:

nataraj · Posted: Fri Nov 07, 2008 7:52 pm Post subject:

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

Pls put me out of my misery. I can't see the wood for the trees - and this is only as far as I can get with basics

storm_norm · Joined: 18 Oct 2007 Posts: 1741

after basics

storm_norm · Joined: 18 Oct 2007 Posts: 1741

Craig, where can the 7 go in col 5?

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

Norm - actually that didn't help me none cos I made a typo. I actually have an extra 7 in Col 5 at R3

keith · Posted: Fri Nov 07, 2008 9:12 pm Post subject:

nataraj · Posted: Fri Nov 07, 2008 9:12 pm Post subject:

Craig,

4 in box 1 must be in row 2
7 in box 2 must be in col 5

That should get you going again...

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

That is disgraceful. You'd think by now I'd have learnt how to use a rubber. (That's what us Brits call an eraser)

keith · Posted: Fri Nov 07, 2008 10:05 pm Post subject:

Craig,

I suggest you get a copy of Sudoku Susser. It is great for hints and tips.

I do all my puzzles by hand, with pencil and paper. I use SS to check for errors and to make the grids that I post online.

In the last grid you posted, its hint is:

Asellus · Posted: Fri Nov 07, 2008 11:33 pm Post subject:

I found Norm's elimination, though differently. Either <6> pincer of the otherwise useless 246 XY-Wing in c2 and r8 can be transported. r8c8 can be transported to r3c7 to eliminate <6> in r1c7. Or, r1c2 can be transported to r9c5 to eliminate <6> in r9c7.

Norm,

Nice use of an ER, which is a grouped strong (inference) link. to activate a W-Wing. Your Eureka notation isn't, technically, bidirectional. Writing the ER portion as:
(2)r89c2=(2)r9c123
takes care of that (with the ERI on both sides of the link). Also, the first part should be "(6=2)r1c2" so that the weakly linked <2>s are together and the pincer <6> is evident on the end of the chain.

Marty R. · Posted: Sat Nov 08, 2008 12:11 am Post subject:

I had an XY-Wing on 462, then a flightless XY-Wing on 246. A pincer coloring, or transport, involving four cells finished it off.

storm_norm · Joined: 18 Oct 2007 Posts: 1741

Asellus · Posted: Sat Nov 08, 2008 11:14 pm Post subject:

storm_norm · Joined: 18 Oct 2007 Posts: 1741

am I looking into this too deeply??

(2)r89c2 = (2)r9c123

just so I understand what should be going through my head, this simple strong inference says that either there is a 2 in r89c2 or there is a 2 in r9c123.
but if you already said either in r89c2, then how can you include r9c2 in --(2)r9c123,

shouldn't it be (2)r89c2 = (2)r9c13

but going the other way this is still not bidirectional because if you say the 2 in r9c5 is true then none of r9c123 is true which leaves 2 in r8c2
its only bidirectional if (2)r8c2 = (2)r9c123.

Asellus · Posted: Sun Nov 09, 2008 2:03 am Post subject:

storm_norm · Joined: 18 Oct 2007 Posts: 1741