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Figure 1.

Hilbert fractal iterations (a) Original, 0th iteration (b) 1st iteration (c) 2nd iteration (d) 3rd iteration.

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Figure 2.

The modeled layout of WBPF.

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Figure 3.

The return loss and transmission responses of WBPF.

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Figure 4.

The modeled layout of NBSF.

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Figure 5.

The return loss and transmission responses of NBSF.

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Figure 6.

The transmission responses of the resulting 2nd iteration Hilbert microstrip filter with respect to different edge spacing values, d, (in mm).

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Figure 7.

The return loss responses of the resulting 2nd iteration Hilbert microstrip filter with respect to different edge spacing values, d, (in mm).

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Table 1.

Summary of simulation result parameters of the modeled Hilbert Filters with respect to d values.

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Figure 8.

The phase responses of the resulting 2nd iteration Hilbert microstrip WBPF.

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Figure 9.

The phase responses of the resulting 2nd iteration Hilbert microstrip NBSF.

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Figure 10.

Current density distribution at the conducting surface of the 2nd iteration Hilbert WBPF simulated at an operating frequency of 2 GHz.

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Figure 10 Expand

Figure 11.

Current density distribution at the conducting surface of the 2nd iteration Hilbert WBPF simulated at an operating frequency of 3 GHz.

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Figure 12.

Current density distribution at the conducting surface of the 2nd iteration Hilbert NBSF simulated at an operating frequency of 2.4 GHz.

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Figure 12 Expand

Figure 13.

Current density distribution at the conducting surface of the 2nd iteration Hilbert NBSF simulated at an operating frequency of 3 GHz.

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