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[andras]

Not too bad, really - a single xy-wing on 6-8-9 solved it for me.

There've been a lot of this sort of solution recently - not that I'm complaining, 'cos I can generally solve them!

John

[Johan]

Lots of one step solutions in this VH.

The xy-wing mentioned by John is one of them, here is another one step,

I'm sure this is not the only one.

ER <6> in Box 7, removing <6> in R8C5.

* is the strong link on <6> in R1

[cgordon]

[cgordon]

...... Also there is another ER in Box 6 which using 4's in C3 removes <4> in R3C8

[tlanglet]

I found another one-step solution: a finned x-wing that removes <6> at R3C34.

Ted

[re'born]

An xyz-wing with pivot at r8c3 eliminates 6 from r7c3 solving the puzzle.

[Marty R.]

I don't understand Johan's grid with that cell apparently solved for 5 in column 1 without the eliminations therefrom. At any rate, I had a different grid and a W-Wing on 46 in boxes 1 and 3 was my one-step solution.

[Johan]

Marty,

You're right about this one, i've made a type error R7C1 must be [59]

instead of a naked <5> in the grid, thanks for spotting this.

The grid without the type error :

[storm_norm]

[Marty R.]

[mckeann]

Hi folks, first time poster so be gentle.


I have solved upto the grid posted by Johan. I have also read all the techniques forum in a bid to try and understand it but i cant.


Could someone please explain to an absolute numpty (please dont use technical terms, my head is buzzing ) how to get the next number.


thanks

Neil

[Marty R.]

[storm_norm]

Neil,
this is probably the perfect puzzle to ask for help.

all I want to do is coach your eyes on finding a very nice xy-wing example in this puzzle.

if you are looking at johan's example, concentrate on row 7. there are only two places in that row that a 9 can be placed. this is crucial because those two cells happen to have two candidates. cells with two candidates are commonly called bi-value cells. this is a good starting place.

r7c1={5,9} r7c3={6,9}

this is key: there really isn't any trick. keep in mind the three candidates you have in these cells: 5, 6, and 9.
with this in mind. let your eyes scan the same two columns 1 and 3 for cells containing these same candidates and, very crucial, are also bi-value.

you will find: r2c1 {8,9} and r1c3 {6,8}

now you have four cells.

this is where the beauty of sudoku comes in. you already know that row 7 can only get one 9. so lets plug 9 into r7c1 and lets see what happens:

r7c1 is a 9
that means r2c1 will be an 8
and that makes r1c3 a 6
and that in turn makes r7c3 a 9 .... oh !!! what's this, a contradiction.

now we know that r7c1 can't be a 9. but there is more. now that we know that r7c3 is a nine,
this eliminates the 9 in r3c3.

in these very hards. its not so much finding the next number, but more about eliminating that one last candidate to make it fall apart.

[andras]

That's a nice explanation, Norm.

Now, if some kind soul here can explain ERs in a way I can understand I'll feel that my ignorance is a little less exposed. I sort of get the idea, but I'm not at all sure that I really grasp the principle behind them, and it's quite beyond me to spot them.

John

[Marty R.]

[nataraj]

Here in this thread http://www.dailysudoku.com/sudoku/forums/viewtopic.php?t=2118 most of the posts are about ERs

Also here: http://www.dailysudoku.com/sudoku/forums/viewtopic.php?t=2063
(where I took this quote from:)

[Marty R.]

[storm_norm]

[nataraj]

[mckeann]