06-1350/Class Notes for Tuesday September 12: Difference between revisions

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<b><font size="+1">Introduction</font></b>
===Introduction===
Unfortunately this definition doesn&#8217;t quite work as most of the knots that we wish to
Unfortunately this definition doesn&#8217;t quite work as most of the knots that we wish to
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<br>
<br>
<b><font size="+1">3 Colouring</font></b>
===3 Colouring===
<br><br>


We give an example of an invariant. Define I<sub>3</sub> : {diagrams}&#x2192;{true, false},
We give an example of an invariant. Define I<sub>3</sub> : {diagrams}&#x2192;{true, false},
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Showing that invariance under R3 is more tedious (and is left as an exercise).
Showing that invariance under R3 is more tedious (and is left as an exercise).


===Jones Polynomial===
<br><br>

<b><font size="+1">Jones Polynomial</font></b>
<br><br>


The simplest way to define the <i>Jones polynomial</i> is via the <i>Kauffman bracket</i>. The idea is to
The simplest way to define the <i>Jones polynomial</i> is via the <i>Kauffman bracket</i>. The idea is to
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however, the right way out of this is to define another invariant which fails in the exactly the
however, the right way out of this is to define another invariant which fails in the exactly the
same way, and multiply it with the bracket polynomial.
same way, and multiply it with the bracket polynomial.

<br><br>
===Writhe===
<b><font size="+1">Writhe</font></b>

<br><br>
The invariant we are looking for is called the <i>writhe</i>. If D is a diagram of an oriented knot, we
The invariant we are looking for is called the <i>writhe</i>. If D is a diagram of an oriented knot, we
define
define
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</center>
</center>
<br>
<br>
We now show that the write is also invariant under R2 and R3, under R1 we gain ±1
We now show that the writhe is also invariant under R2 and R3, under R1 we gain ±1
depending which way we apply it. In R2, the two crossings have opposite signs; and in R3, the
depending which way we apply it. In R2, the two crossings have opposite signs; and in R3, the
diagonal crossing doesn&#8217;t change sign and the other two are reversed.
diagonal crossing doesn&#8217;t change sign and the other two are reversed.

Revision as of 16:43, 19 September 2006

Introduction

Unfortunately this definition doesn’t quite work as most of the knots that we wish to distinguish will actually be equivalent (we may shrink down the knotted part to a point). For this reason, we replace continuous with smooth or piecewise linear (this time we may not shrink down the knotted part to the point as we will get a singularity). We will not discuss this in detail, but rather state the results:

Every knot can be represented by a finite diagram, e.g.

http://katlas.math.toronto.edu/drorbn/images/e/e1/Trifoil.png


Two such diagrams represent the same knot if they differ by a sequence of Reidemeister moves. When we draw diagrams, we often don’t draw the entire knot, only the parts which are to be changed.

An invariant is a map from diagrams to say formal power series Z((q)) which respects R1 - R3. Thus, the invariant descends to equivalence classes of diagrams, i.e to knots.



http://katlas.math.toronto.edu/drorbn/images/8/8a/Reid.png
R1: top left, R2: top right, R3: bottom middle


3 Colouring

We give an example of an invariant. Define I3 : {diagrams}→{true, false}, I3 is true whenever its arcs may be coloured with red, green, blue (RGB), such that all colours appear and at every crossing is mono or tri-chromatic.

We can now distinguish the trifoil from the unknot as the trifoil is 3-colourable while the unknot is not. However, we cannot distinguish (yet) the trifoil from its mirror image, so later we will look for more powerful invariants.

http://katlas.math.toronto.edu/drorbn/images/9/93/Trifoil2.png


We now prove that I3 is an invariant, that is we need to show that I3 is preserved after R1, R2 and R3. The test for R1 is straight forward:

http://katlas.math.toronto.edu/drorbn/images/2/25/3col-a.png


For R2, we have two possibilities. The second case for R2 requires further consideration: where did the green go? Here, we remember that we are only drawing part of the diagram. Since the red and blue branches must meet, at such a crossing, green will appear. Showing that invariance under R3 is more tedious (and is left as an exercise).

Jones Polynomial

The simplest way to define the Jones polynomial is via the Kauffman bracket. The idea is to eliminate all crossings using the rule:

http://katlas.math.toronto.edu/drorbn/images/6/64/Kauffman.png


In the right hand side, the first bracket is called the 0-smoothing and the second is called the 1-smoothing. To calculate the Kauffman bracket we must sum over all possible smoothings. For instance, for the trifoil, we 23 = 8 summands, one of which will be:

http://katlas.math.toronto.edu/drorbn/images/8/8b/Trifoil-smoothing.png


Each summand will have no crossing and thus will be a union of (possibly nested) unknots. We define the bracket polynomial of k unknots to be dk-1 for some indeterminate d. Our hopes that our polynomial in ℤ[d,A,B] will be an invariant under the Reidmeister moves. We first verify R2.

http://katlas.math.toronto.edu/drorbn/images/c/cd/Jones-r2.png


Collecting like terms and comparing we find AB = 1 and A2 + B2 + dAB = 0. Thus, we must have B = A-1 and d = -(A2 + A2). Things are looking bad, we still have two moves to verify and we already lost two of our variables.

We now verify R3. For this we remark that

http://katlas.math.toronto.edu/drorbn/images/f/fb/Jones-r3.png


The two diagrams with coefficients B coincide; and the diagrams with coefficients A differ by two R2 moves. Now we verify R1:

http://katlas.math.toronto.edu/drorbn/images/9/99/Jones-r1.png


The right hand side evaluates to A + A-1(-A2 -A-2) = -A3 of the desired. This is unfortunate. One could salvage something by taking A to be one of the cube roots of -1; however, the right way out of this is to define another invariant which fails in the exactly the same way, and multiply it with the bracket polynomial.

Writhe

The invariant we are looking for is called the writhe. If D is a diagram of an oriented knot, we define

http://katlas.math.toronto.edu/drorbn/images/8/88/Mathtext1.png


We choose +1 if the crossing is positive (the overpass goes over the underpass from left to right) and -1 if the crossing is negative (otherwise):

"http://katlas.math.toronto.edu/drorbn/images/3/38/Crossings.png


Lets have an example. Notice that the orientation of the knot is actually irrelevant.



http://katlas.math.toronto.edu/drorbn/images/c/c5/Writhe-example.png


We now show that the writhe is also invariant under R2 and R3, under R1 we gain ±1 depending which way we apply it. In R2, the two crossings have opposite signs; and in R3, the diagonal crossing doesn’t change sign and the other two are reversed.



http://katlas.math.toronto.edu/drorbn/images/f/f9/Writhe-reid.png


It follows that 〈D〉⋅(-A-3)w(d) is a knot invariant. This is a polynomial in A, we now substitute q http://katlas.math.toronto.edu/drorbn/images/2/23/Mathtext2.png for A and call this the Jones polynomial (which strictly speaking, is not really a polynomial).