Graceli wave function with infinitesimal and Frequency variable.
A] Fx / [ logx / x n ... * 0 ] / t / c / t ]
B ] Fx / [ log x / x n ... * X ] / t / c / t ]
C ] Fx / [ log x / x n .... * - Y ] / t / c / t ]

wave function with infinitesma and Frequency graceli variable.
A] Fx / [ logx / x n ... * 0 ] / t / c / t ]
B ] Fx / [ log x / x n ... * X ] / t / c / t ]
C ] Fx / [ log x / x n .... * - Y ] / t / c / t ]

Frequency Graceli statistical calculation .
Graceli infinitesimal oscillatory function of frequency fx / [ logx / x n ... / t / c / t ]
Infinitesimal frequency oscillatory alternanciadade .



=

That is, the alternate operations of the function to form a statistical frequency of alternating values , or even disappear .
Where we have waves that vary with time and disappear when multiplied by zero [0].
Ie transcendent . That disappear and reappear with different values .
Examples .
The system alternancidade fits in sudden jumps of electrons and cease to constantly empty the quantum of radiation , and the empty spaces that are in fields and dust clouds of galaxies and stars . These voids also see the thermal radiation in the asphalt and deserts , where we see the the radiation above the asphalt and a gap between the asphalt and radiation . The same happens cnas desert sands during hot days and solar radiation on the ground .
Oscillatory geometry and statistical undetermined .
Side. 1 , 2, 3 .
Angle. A, b, c .
Side 1 = angles between the b .
Side 2 = angles between the b c .
Side 3 = angle between the c .
H = height of the oscillatory wave.
AC = acceleration.
D = distance from the side between the angles
Log h / h .
Log AC / AC / t .
Side 1 =

B ] Fx / [ log x / x n ... * X ] / t / c / t ]
C ] Fx / [ log x / x n .... * - Y ] / t / c / t ]
Side 2 =

B ] Fx / [ log x / x n ... * X ] / t / c / t ]
C ] Fx / [ log x / x n .... * - Y ] / t / c / t ]
Side = 3 =

B ] Fx / [ log x / x n ... * X ] / t / c / t ]
C ] Fx / [ log x / x n .... * - Y ] / t / c / t ]
Oscillatory geometry Graceli
Calculation Graceli to geometric variations .
For areas and volumes adds oscillatory Graceli variable that multiplies the actual number , or even the variable logx / x that multiplies the actual number , which can be divisible by time, or even the speed of light through time, giving a quantum and statistical connotation .
Variable oscillation to Graceli areas, volumes , and circles , triangles and rectangles, and even variation in angles and sine , cosine , tangent , and others.
+ V = [ R * osc / t] / [ c / t ] .
+ V = logx / x * [ osc * R / t] / [ c / t ] . Infinitesimal sequential variables .
Osc osc * = 0 = Sine , 1 osc * , the * R * osc positive or negative value , osc * logx / x [ n ... ] .
v = variable.
osc = oscillation.
R = real numbers
ct = speed of light by time.
Laws of geometry Graceli oscillatory .
1 - The sum of the internal angles of a triangle will never be 180 degrees . Well , we closed angles with more tips and that open or close at another time .
2 - The value of pi is never repeated , ie , there is no pi to circle geometry in oscillatory statistical Graceli .
3 - Values of trigonometry will vary , ie for sine, cosine , tangent , and have another trigonometry.
Thus , shapes, areas and volumes will always vary.
Example of cylinder volumes . but Graceli variable.
V = Ab . h = πr2h + [v = logx / x * [ osc * R / t] / [ c / t ] ] .
For cone area :
AT = Al + Ab = πrs + πr2 = πr ( r + s ) + [v = logx / x * [ osc * R / t] / [ c / t ] ] .
Areas spheres .
A = 4πrs2 ) + [v = logx / x * [ osc * R / t] / [ c / t ] ] .